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Thermal decomposition of magnesium bicarbonate
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Neil Morrison
Thermal decomposition of magnesium bicarbonate
The title of this thread is perhaps more accurately the thermal decomposition of aqueous magnesium bicarbonate, as the dry salt does not exist.
Per my personal experience, solutions of the salt can decompose on standing in the course of days or upon warming. To quote Wikipedia on Magnesium bicarbonate, to quote:
Magnesium bicarbonate exists only in aqueous solution. Magnesium does not form solid bicarbonate as like Lithium. To produce it, a suspension of magnesium hydroxide is treated with pressurized carbon dioxide, producing a solution of magnesium bicarbonate:
$\ce{Mg(OH)2 + 2 CO2 → Mg(HCO3)2}$
Drying the resulting solution causes the magnesium bicarbonate to decompose, yielding magnesium carbonate, carbon dioxide, and water:
$\ce{Mg++ + 2 HCO3− → MgCO3 + CO2 + H2O}$
Further heating of the dry magnesium carbonate can result in its decomposition as noted above.
$$\ce{MgCO3 (s) -> MgO (s) + CO2 (g)}$$
The title of this thread is perhaps more accurately the thermal decomposition of aqueous magnesium bicarbonate, as the dry salt does not exist.
Per my personal experience, solutions of the salt can decompose on standing in the course of days or upon warming. To quote Wikipedia on Magnesium bicarbonate, to quote:
Magnesium bicarbonate exists only in aqueous solution. Magnesium does not form solid bicarbonate as like Lithium. To produce it, a suspension of magnesium hydroxide is treated with pressurized carbon dioxide, producing a solution of magnesium bicarbonate:
$\ce{Mg(OH)2 + 2 CO2 → Mg(HCO3)2}$
Drying the resulting solution causes the magnesium bicarbonate to decompose, yielding magnesium carbonate, carbon dioxide, and water:
$\ce{Mg++ + 2 HCO3− → MgCO3 + CO2 + H2O}$
Further heating of the dry magnesium carbonate can result in its decomposition as noted above.$$\ce{MgCO3 (s) -> MgO (s) + CO2 (g)}$$
I can quite easily remember from my class XI studies that carbonates of alkali metals decompose on heating to give carbon dioxide and the corresponding metal oxide.
Moreover the thermal stability of the alkali metal carbonates increases with increasing cationic size because carbonate ion is big in size and increased cationic size leads to better bonding and hence greater stability.
In this regard the beryllium carbonate is the least stable alkali carbonate or in other words, an unstable alkali carbonate and readily decomposes into $\ce{BeO}$ and $\ce{CO2}$. $\ce{BeCO3}$ is so unstable that it can only be kept in an atmosphere of $\ce{CO2}$. $\ce{MgCO3}$ is also a bit unstable taking into consideration the above fact.
So the reaction you mentioned basically gives $\ce{MgCO3}$ as the product but $\ce{MgCO3}$ decomposes readily to give $\ce{MgO}$ and $\ce{CO2}$.
$$\ce{Mg(HCO3)2 -> MgCO3 + H2O + CO2}$$
and
$$\ce{MgCO3 -> MgO + CO2}$$
giving
$$\ce{Mg(HCO3)2 -> MgO + H2O + 2CO2}$$
I can quite easily remember from my class XI studies that carbonates of alkali metals decompose on heating to give carbon dioxide and the corresponding metal oxide.
Moreover the thermal stability of the alkali metal carbonates increases with increasing cationic size because carbonate ion is big in size and increased cationic size leads to better bonding and hence greater stability.
In this regard the beryllium carbonate is the least stable alkali carbonate or in other words, an unstable alkali carbonate and readily decomposes into $\ce{BeO}$ and $\ce{CO2}$. $\ce{BeCO3}$ is so unstable that it can only be kept in an atmosphere of $\ce{CO2}$. $\ce{MgCO3}$ is also a bit unstable taking into consideration the above fact.
So the reaction you mentioned basically gives $\ce{MgCO3}$ as the product but $\ce{MgCO3}$ decomposes readily to give $\ce{MgO}$ and $\ce{CO2}$.$$\ce{Mg(HCO3)2 -> MgCO3 + H2O + CO2}$$and$$\ce{MgCO3 -> MgO + CO2}$$giving $$\ce{Mg(HCO3)2 -> MgO + H2O + 2CO2}$$
The title of this thread is perhaps more accurately the thermal decomposition of aqueous magnesium bicarbonate, as the dry salt does not exist.
Per my personal experience, solutions of the salt can decompose on standing in the course of days or upon warming. To quote Wikipedia on Magnesium bicarbonate, to quote:
Further heating of the dry magnesium carbonate can result in its decomposition as noted above. $$\ce{MgCO3 (s) -> MgO (s) + CO2 (g)}$$
Per Wikipedia on magnesium carbonate, its decomposition temperature is 350 °C.
The title of this thread is perhaps more accurately the thermal decomposition of aqueous magnesium bicarbonate, as the dry salt does not exist.
Per my personal experience, solutions of the salt can decompose on standing in the course of days or upon warming. To quote Wikipedia on Magnesium bicarbonate, to quote:
Further heating of the dry magnesium carbonate can result in its decomposition as noted above.$$\ce{MgCO3 (s) -> MgO (s) + CO2 (g)}$$
Per Wikipedia on magnesium carbonate, its decomposition temperature is 350 °C.
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I can quite easily remember from my class XI studies that carbonates of alkali metals decompose on heating to give carbon dioxide and the corresponding metal oxide.
Moreover the thermal stability of the alkali metal carbonates increases with increasing cationic size because carbonate ion is big in size and increased cationic size leads to better bonding and hence greater stability.
In this regard the beryllium carbonate is the least stable alkali carbonate or in other words, an unstable alkali carbonate and readily decomposes into $\ce{BeO}$ and $\ce{CO2}$. $\ce{BeCO3}$ is so unstable that it can only be kept in an atmosphere of $\ce{CO2}$. $\ce{MgCO3}$ is also a bit unstable taking into consideration the above fact.
So the reaction you mentioned basically gives $\ce{MgCO3}$ as the product but $\ce{MgCO3}$ decomposes readily to give $\ce{MgO}$ and $\ce{CO2}$. $$\ce{Mg(HCO3)2 -> MgCO3 + H2O + CO2}$$ and $$\ce{MgCO3 -> MgO + CO2}$$ giving $$\ce{Mg(HCO3)2 -> MgO + H2O + 2CO2}$$
I can quite easily remember from my class XI studies that carbonates of alkali metals decompose on heating to give carbon dioxide and the corresponding metal oxide.
Moreover the thermal stability of the alkali metal carbonates increases with increasing cationic size because carbonate ion is big in size and increased cationic size leads to better bonding and hence greater stability.
In this regard the beryllium carbonate is the least stable alkali carbonate or in other words, an unstable alkali carbonate and readily decomposes into $\ce{BeO}$ and $\ce{CO2}$. $\ce{BeCO3}$ is so unstable that it can only be kept in an atmosphere of $\ce{CO2}$. $\ce{MgCO3}$ is also a bit unstable taking into consideration the above fact.
So the reaction you mentioned basically gives $\ce{MgCO3}$ as the product but $\ce{MgCO3}$ decomposes readily to give $\ce{MgO}$ and $\ce{CO2}$.$$\ce{Mg(HCO3)2 -> MgCO3 + H2O + CO2}$$and$$\ce{MgCO3 -> MgO + CO2}$$giving $$\ce{Mg(HCO3)2 -> MgO + H2O + 2CO2}$$
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